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[20]Zhou CJ, Dun CC, Wang K, Zhang X, Shi ZQ, Liu GW, Hewitt CA, Qiao GJ, Carroll DL. General method of synthesis ultrathin ternary metal chalcogenide nanowires for potential thermoelectric applications. Nano Energy, 2016, 30: 709–716.
[19]Zhou CJ, Dun CC, Wang Q, Wang K, Shi ZQ, Carroll DL, Liu GW, Qiao GJ. Nanowires as build block to fabricate flexible thermoelectric fabric: the case of copper telluride nanowires. ACS Applied Materials & Interfaces, 2015, 7(38):21015–21020.
[18]Wang K, Zhou CJ, Xi D, Shi ZQ, He C, Xia HY, Liu GW, Qiao GJ. Component-controllable synthesis of Co(SxSe1−x)2 nanowires supported by carbon fibre paper as high-performance electrode for hydrogen evolution reaction. Nano Energy, 2015, 18:1–11.
[17] Wang K, Ye ZG, Liu CQ, Xi D, Shi ZQ, Zhou CJ, Xia HY, Liu GW, Qiao GJ. Morphology-controllable synthesis of cobalt telluride branched heterostructures on carbon fibre paper as electrocatalysts for hydrogen evolution reaction. ACS Applied Materials & Interfaces, 2016, 8(5): 2910–2916.
[16]Xu SJ, Luo YF, Liu GW, Qiao GJ, Zhong W, Xiao ZH, Luo YP, Ou H. Bifacial dye-sensitized solar cells using highly transparent PEDOT:PSS films as counter electrodes. Electrochimica Acta, 2015, 156: 20‒28.
[15]Xu SJ, Liu GW, Li J, Qiao GJ. Incorporating conductor paste in a low-temperature fabrication process for large mesoporous carbon counter electrode in dye-sensitized solar cells. Electrochimica Acta, 2012, 76(1): 504–511.
[14]Ye ZG, Wang BF, Liu GW, Dong YH, Cui X, Peng XY, Zou AH, Li DS, Micropore-dominant vanadium and iron co-doped MnO2 hybrid film electrodes for high-performance supercapacitors. Journal of The Electrochemical Society, 2016,163(13): A2725–A2732.
[13]Xu R, Li HH, Zhang WW, Liu GW, Xu ZW, Shao HC, Qiao GJ, Fabrication of In2O3/In2S3/Ag nanocubes for efficient photoelectrochemical water splitting. Physical Chemistry Chemical Physics, 2016, 18: 2710–2717.
[12]Han Y, Liu GW, Zou DN, Liu R, Qiao GJ. Deformation behavior and microstructural evolution of as-cast 904L austenitic stainless steel during hot compression. Materials Science and Engineering A, 2013, 565, 342–350.
[11]Wang W, Zhou CJ, Liu GW, Qiao GJ. Molten salt synthesis of mullite whiskers on the surface of SiC ceramics. Journal of Alloys and Compounds, 2014, 582: 96‒100.
[10]Zhao ST, Zhang XZ, Liu GW, Valenza F, Muolo ML, Qiao GJ, b, Passerone A. Wetting and interfacial behavior of molten Cu on Co-Si(-Mo) coated SiC. Ceramics International, 2015, 41(10):13493–13501.
[9]Liu GW, Jian WZ, Jin HY, Shi ZQ, Qiao GJ. A high dielectric constant in nano-TiO2 ceramic prepared by a rapid and high-pressure sintering process. Scripta Materialia, 2011, 65(7): 588–593.
[8]Liu GW, Qiao GJ, Wang HJ, Yang JF, Lu TJ. Pressureless brazing of zirconia to stainless steel with Ag-Cu filler metal and TiH2 powder. Journal of the European Ceramic Society, 2008, 28(14): 2701–2708.
[7]Liu GW, Li W, Qiao GJ, Wang HJ, Yang JF, Lu TJ. Microstructure and interfacial behavior of zirconia/stainless steel joint prepared by pressureless active brazing. Journal of Alloys and Compounds, 2009, 470(1-2): 163–167.
[6]Liu GW, Han Y, Shi ZQ, Sun JP, Zou DN, Qiao GJ. Hot deformation and optimization of process parameters of an as-cast 6Mo superaustenitic stainless steel: a study with processing map. Materials & Design, 2014, 53: 662–672.
[5]Liu GW, Valenza F, Muolo ML, Passerone A. SiC/SiC and SiC/Kovar joining by Ni-Si and Mo interlayers. Journal of Materials Science, 2010, 45(16): 4299–4307.
[4]Liu GW, Valenza F, Muolo, ML, Qiao GJ, Passerone A. Wetting and interfacial behavior of Ni-Si alloy on different substrates. Journal of Materials Science, 2009, 44(22): 5990–5997.
[3]Liu GW, Jian WZ, Jin HY, Shi ZQ, Qiao GJ. Dielectric behavior of TiO2 ceramic prepared by plasma activated sintering. Materials letters, 2011, 65(23-24): 3468–3471.
[2]Liu GW, Li J, Qiao GJ, Xu SJ, Wang HJ, Lu TJ. Hierarchical macroporous carbon processed with ethylene glycol and starch as double porogens. Materials Letters, 2010, 64(24): 2696–2699.
[1]Liu GW, Muolo ML, Valenza F, Passerone A. Survey on wetting of SiC by molten metals. Ceramics International, 2010, 36(4): 1177–1188.